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Ethyl Perfluoropentanoate

    • Product Name Ethyl Perfluoropentanoate
    • Alias Pentafluoropropionic acid ethyl ester
    • Einecs 700-568-1
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    954325

    Chemical Name Ethyl Perfluoropentanoate
    Molecular Formula C7H5F9O2
    Molecular Weight 292.1 g/mol
    Cas Number 30342-19-7
    Appearance Colorless liquid
    Boiling Point 88-90°C (at 760 mmHg)
    Density 1.63 g/mL at 25°C
    Refractive Index 1.294 (at 20°C)
    Solubility Insoluble in water
    Smiles CCOC(=O)C(F)(F)C(F)(F)C(F)(F)C(F)(F)F

    As an accredited Ethyl Perfluoropentanoate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 250 mL clear glass bottle with screw cap, labeled "Ethyl Perfluoropentanoate," hazard symbols, supplier name, and lot number.
    Shipping Ethyl Perfluoropentanoate is shipped in tightly sealed containers, compliant with relevant transport regulations for chemicals. Store and transport away from heat, open flames, and incompatible substances. Labeling must indicate possible hazards. Use suitable packaging to prevent leaks, and include safety data sheets during transit. Handle with appropriate protective equipment.
    Storage **Ethyl Perfluoropentanoate** should be stored in a cool, dry, and well-ventilated area, away from heat, sparks, and open flames. Keep the container tightly closed and protect it from moisture and incompatible materials such as strong acids and bases. Store in approved, labeled chemical-resistant containers and follow appropriate safety protocols for handling fluorinated organic compounds.
    Application of Ethyl Perfluoropentanoate

    Applications of Ethyl Perfluoropentanoate in Industrial Manufacturing

    Ethyl Perfluoropentanoate delivers specialized chemical characteristics for precise industrial needs, especially in advanced fluorochemical synthesis. Its value lies in supporting high-performance material design and process innovation in industries demanding exacting quality and compliance. Our experience as a direct manufacturer ensures process knowledge spans regulatory needs, technical performance, and downstream application specifics.

    1. Fluorinated Surfactant Intermediate for Firefighting Foam Formulations

    Ethyl Perfluoropentanoate acts as a key intermediate when producing modern C6-based fluorinated surfactants, which are integral in Class B firefighting foams. Downstream formulators utilize its structure for synthesizing fluorotelomer-based surfactants, balancing film-formation and wetting requirements while meeting regulatory mandates for low environmental persistence. These foams require optimized chain length and high purity during intermediate stage, which this chemical facilitates by controlled reactivity and predictable transformation in telomerization and oligomerization processes. The application supports manufacturers targeting safe, PFOS/PFOA-compliant firefighting products used at airports, refineries, and chemical plants where spill control performance and regulatory documentation are critical.

    Industry compliance standards

    • US EPA Stewardship 2010/15 Program (PFOS/PFOA restriction guidance)
    • EN 1568-3:2018 Firefighting Foams (Europe)
    • REACH Regulation (EC) No 1907/2006 (Annex XVII restrictions)
    • NFPA 11–2024 Edition (foam systems requirements)

    Typical usage ratio

    • Intermediate conversion yields in surfactant synthesis: 10–30% of total fluorinated acid chloride stream, tuning input by molecular weight targets and required functional group activation for downstream telomer/oligomer chain length

    Downstream process integration

    • Input as a reactive intermediate during fluorotelomerization or amidation stages prior to blending into foam concentrate
    • Utilized in closed-system batch or continuous reactors with inert-atmosphere and high-purity control

    Final product types

    • Class B Aqueous Film-Forming Foam (AFFF)
    • Synthetic firefighting foams for hydrocarbon spill control
    • Airport firefighting concentrates
    • Foam suppression fluids for industrial hazards

    2. Synthesis Feedstock for Advanced Fluoropolymer Monomers

    Manufacturers incorporate Ethyl Perfluoropentanoate as a short-chain saturated perfluorinated ester precursor when designing bespoke fluorinated acrylate or methacrylate monomers for high-performance polymer systems. Downstream polymer producers leverage this ester in transesterification or amidation, followed by polymerizable group attachment, thus securing perfluorinated architectures with predictable reactivity and thermal stability for technically demanding coatings and electronics encapsulation. Control over molecular architecture and end-group functionality in this step secures balance in barrier properties, flexibility, and regulatory compliance of resulting fluoropolymer materials.

    Industry compliance standards

    • ASTM D5630-21 (fluoropolymer content and identification)
    • RoHS Directive (2011/65/EU) – hazardous substance limits
    • UL 94 Flammability Standard for Plastics Materials
    • ISO 9001:2015 (polymer manufacturing quality systems)

    Typical usage ratio

    • Feeds 3–10 mol% of total ester input during monomer synthesis, with adjustment per chain extension requirements and desired end-group modification efficiency

    Downstream process integration

    • Reacted in custom glass-lined or fluoropolymer-lined reactors during step-growth or chain transfer reactions
    • Incorporated before radical or ionic polymerization as a verified pure feedstock for precision tuning of polymer properties

    Final product types

    • Functional fluorinated acrylate/methacrylate monomers
    • Fluoropolymer coatings for semiconductors and PV panels
    • Advanced thin-film electronics encapsulants
    • Protective membranes for chemical process equipment

    3. Component for Battery Electrolyte Additive Manufacturing

    Producers of specialty electrolyte additives for lithium-based battery cells use Ethyl Perfluoropentanoate as a non-reactive perfluorinated component to enhance electrochemical stability. In downstream cell-manufacturing, formulators blend it as a functionalized solvent additive or surface-protective intermediate, targeting longer cycling life, reduced gas formation, and thermal stability at high-voltage operation in power cells and energy storage modules. The integration depends on reaching low impurity levels and ensuring no catalytic or chain-transfer side reactions that may degrade battery performance through the entire storage and discharge cycle.

    Industry compliance standards

    • IEC 62660-2:2018 (Safety requirements for Li-ion batteries)
    • UN Manual of Tests and Criteria, Part III, Section 38.3 (transport of dangerous goods – batteries)
    • ISO/TS 19837:2018 (Lithium-ion battery environmental safety)
    • ISO 14001:2015 (Environmental management during manufacturing)

    Typical usage ratio

    • Added at 0.1–1.5 wt% to electrolyte blends, based on target cell chemistry, desired film-forming characteristics, and absence of competitive electrochemical reduction at the electrode surface

    Downstream process integration

    • Mixed in controlled humidity cleanrooms during electrolyte formulation preceding vacuum-filling into pre-assembled cell casings
    • Included prior to cell-aging and end-of-line QA sample testing for performance optimization

    Final product types

    • Lithium-ion cylindrical and prismatic cells
    • Rechargeable polymer battery pouches for mobile electronics
    • Stationary grid-energy storage modules
    • EV cell packs with high-abuse tolerance

    4. Precursor for Oil and Water Repellent Textile Finishes

    Ethyl Perfluoropentanoate enters textile chemical manufacturing as a starting ester in fluorinated finishing agent production. Downstream formulators hydrolyze and react it to create fluorinated acrylate or urethane segments, specifically optimized for short-chain C6/C5 repellent systems. These agents align with current global restrictions against long-chain perfluorocarbons while delivering functional repellency and fabric durability. Integration focuses on generating low-migration, durable water repellent (DWR) finishes that meet strict environmental and skin safety profiles, used by textile finishing mills serving technical workwear, outdoor equipment, upholstery, and performance apparel markets.

    Industry compliance standards

    • OEKO-TEX® Standard 100
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals)
    • REACH Annex XVII (long-chain PFC restriction)
    • GB/T 29508-2013 (Chinese technical standard for water/oil repellent textiles)

    Typical usage ratio

    • Conversion impacts 15–35% of the fluorine content in finishing agent syntheses, with active loading rates in mill finishes at 0.3–1.2% owf (on weight of fabric), varying by substrate density and exposure criteria

    Downstream process integration

    • Used in batch- or semi-batch synthesis of fluorinated functional agents, introduced post-esterification; quality control focuses on unreacted acid traces and byproduct removal
    • Final agent applied via pad-dry-cure or spray in automated finishing lines

    Final product types

    • Outdoor and technical garment shell fabrics
    • Workwear and safety uniforms
    • Home and contract upholstery textiles
    • Industrial filter fabrics with advanced repellency

    5. Additive Intermediate in Photolithography Resist Synthesis

    In semiconductor manufacturing, formulators select Ethyl Perfluoropentanoate for its defined perfluorinated backbone, enabling synthesis of highly pure, low-leaching fluorinated photoresist monomers. This intermediate contributes to resist polymers that offer superior plasma etch resistance and minimal swelling under advanced node lithography conditions. Downstream electronic chemical suppliers integrate it through ester-exchange or ring-opening steps, strictly monitoring trace metal content and side-chain uniformity to maintain photopattern transfer fidelity in sub-10nm process technology, addressing demands for quality assurance and registration traceability during high-volume chip manufacturing.

    Industry compliance standards

    • SEMI C24 standards (photoresist purity and performance)
    • IATF 16949 (semiconductor supply chain quality)
    • JIS K5600-7-4:2014 (coating materials in photolithography)
    • IEC 60749-5 (semiconductor device robustness)

    Typical usage ratio

    • Feeds 2–8 mol% in formulated monomer mix, ratio modified by process node, etch selectivity target, and allowable copolymer crosslinking density

    Downstream process integration

    • Introduced following controlled synthesis of perfluoroalkyl group-containing monomers in high-purity, metal-free facilities
    • Integrated during final copolymerization prior to solvent dissolution and resist formulation

    Final product types

    • High-resolution i-line/ArF photolithography resists
    • Plasma etch-blocking thin films for advanced IC and display production
    • Photoresist systems for MEMS fabrication
    • Advanced packaging dielectrics in wafer-level manufacturing
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    Certification & Compliance
    More Introduction

    Ethyl Perfluoropentanoate: Consistent Quality from an Experienced Chemical Manufacturer

    What Sets Ethyl Perfluoropentanoate Apart in Chemical Development

    Industrial research labs and advanced materials plants know the importance of reliable specialty compounds. Ethyl Perfluoropentanoate, recognized within the sector under its molecular formula C7F14O2, stands out among fluorinated esters for performance and dependability. As the manufacturer, the strongest point we can attest to is the compound’s track record in challenging applications—a result of both deliberate engineering and years of direct process feedback from customers who require consistency in every drum.

    Production demands tight process control at every step. Our own synthesis routes rely on high-purity feedstocks, vacuum distillation, and strict quality assessments for moisture, acid content, and residual non-fluorinated impurities. Direct monitoring of each parameter during batch and continuous runs reduces product variability. Measurements from gas chromatography and NMR keep each lot in a narrow range for purity, typically above 99.5% as determined by end-use and regulatory standards for the sectors we serve.

    Many users encounter changing specifications in the fine chemical sector. We saw this firsthand supporting electronic material manufacturers scaling from pilot to commercial output. The first challenge came with colorless clarity; batches with faint hues or subtle turbidity risked cross-reaction or deposition in complex devices. Adjusting our purification stages—raising reflux ratios and tightening filtration media spec—cut out visible contaminants. Now, downstream users report a dramatic reduction in defect rates in photolithography and coating lines, and our repeat samples consistently return “no visible residue under 365nm inspection”.

    Applications in Advanced Materials and Chemical Synthesis

    Fluorinated esters like Ethyl Perfluoropentanoate hold undeniable advantages in demanding synthetic schemes. Electronics customers first approached us to help eliminate contamination issues in thin-film production. The fluorinated chain imparts excellent thermal stability and chemical inertness, making it suitable for electronic-grade coatings and as an intermediate in next-generation display and semiconductor materials. Our customers’ tests show strong resistance to hydrolysis at the high temperatures required for vapor deposition and pattern transfer.

    In pharmaceutical ventures, this ester often enters late-stage synthetic steps for complex APIs when selectivity and reproducibility matter most. After years supporting process chemists, we’ve learned the frustrating impact of trace contaminants that can poison a catalyst or complicate isolation. Our quality assurance team works closely with end-users to confirm analytical signatures and optimize storage conditions that preserve reactivity without risk of polymerization.

    Fluorinated compounds play a growing role in specialty surfactants, lubricants, and surface treatments. We collaborate with industrial partners developing non-wetting surface coatings and anti-smudge treatments for glass and polymers. The strong C-F bond and hydrophobic backbone reduce surface energy, outperforming shorter-chain or hydrocarbon competitors, while the ethyl ester group offers a unique entry point for further functionalization. Where some other esters degrade or react with formulation agents, Ethyl Perfluoropentanoate withstands harsh processing conditions, including highly acidic or basic media. Our process optimization delivers predictable reactivity and shelf-stable samples for even the most time-sensitive manufacturing lines.

    Model, Physical Specifications, and Storage Insights

    Our standard production lot of Ethyl Perfluoropentanoate conforms to a molecular weight of approximately 366.08 g/mol, boiling range around 82-84°C at 30 mmHg, and density near 1.62 g/cm³ at 25°C. These characteristics enable easy handling and predictable integration into multi-stage chemical syntheses. Odorless and colorless when pure, stabilized samples withstand light and moderate humidity, but we always recommend storage in sealed fluoropolymer-lined containers for long durations to avoid unforeseen interactions.

    Users often ask about volatility during handling. Our years processing bulk packaging highlight the need for inert atmospheres when transferring, particularly for high-throughput applications in batch reactors. This prevents absorption of atmospheric moisture, which, even in trace amounts, can alter downstream reactions or solubility profiles. We designed our equipment and packaging specifically for the compound’s physical form, limiting headspace and using reliable seals tested for fluorinated vapor resistance.

    Long-term customers pressed for improvements after routine sampling flagged slight color or acidity drift. By retrofitting storage tanks with upgraded desiccant and nitrogen-blanketing, we eliminated yearly losses from hydrolysis and maintained lot-to-lot repeatability. This adjustment responded directly to user feedback, improving end-use yields and reducing scrap. Our line operators track every process deviation and keep communication channels open for real-time support, making everyday manufacturing complications less disruptive for our partners.

    Comparisons—Ethyl Perfluoropentanoate Versus Other Fluorinated Esters

    Across the spectrum of perfluorinated esters, Ethyl Perfluoropentanoate holds unique value due to the specific design of its ethyl chain and fully fluorinated pentanoic backbone. Compared to methyl perfluoropentanoate or longer-chain analogs, it strikes a balance between volatility, processability, and substrate compatibility. In fluorochemical arrays where volatility or chain-length compatibility makes a real difference, the ethyl ester fills performance niches that methyl or propyl derivatives miss. Semiconductor partners shared feedback that too-high volatility in methyl analogs complicated thin-film uniformity due to rapid vapor losses. On the other side, propyl and longer-chain esters sometimes sacrifice reactivity or leave films with outgassing issues. Our ethyl ester matches volatility requirements for most vacuum-based coating equipment while providing a clean decomposition profile, which sharply reduces downtime for chamber cleaning.

    We’ve visited R&D centers that struggled with chain fragmentation during thermal cycles, especially with competitor-sourced material. Extended process monitoring showed that our Ethyl Perfluoropentanoate preserved molecular integrity throughout rigorous heating and quenching stages, translating into more predictable product yields. For formulators concerned about environmental and regulatory restrictions, our product, screened for residual shorter perfluoroalkyl chains, passes dissolution and emissions protocols demanded by European and North American agencies.

    In solvent-based applications, our users appreciate that Ethyl Perfluoropentanoate dissolves well in typical perfluorinated and chlorinated solvents, accommodating a broad variety of reaction conditions. It mixes cleanly with both high- and low-viscosity intermediates, which can be critical when formulating multi-component solutions or blends. This distinct advantage over less compatible esters makes it preferable in test runs and pilot lines. After years dealing with fouling and solvent separation in high-shear mixers, we appreciate the simplicity that comes with a compound that just works every time.

    Reliability, Regulation, and Real-World Production

    Ethyl Perfluoropentanoate’s place in the chemical sector does not only rest on its molecular structure, but on the care taken in its manufacture and the ability to respond swiftly to end-user challenges. Manufactures with less experience sometimes leave critical details of process control to chance, leading to trace contaminants or batch inconsistencies. Our own production lines have faced breakdowns and supply chain hiccups in the past, teaching us that robust backup redundancy, supplier vetting, and rigorous final inspection will always pay off in the long run. Maintaining detailed run logs, regular validation of analytical equipment, and rotating staff through continued process training create confidence in every drum delivered.

    Regulatory expectations have grown considerably over the past decade. Our facility and management team coordinate with regional health and safety agencies, updating all compliance documentation and hazard assessments to keep up with evolving standards around perfluorinated substances. As legislators expand the reach of reporting and monitoring, our lab team keeps detailed records of emissions, effluent treatment, and waste-handling procedures. Clients draw reassurance from clear documentation and batch traceability in audits. Plant tours and on-site reviews with customer quality teams continue to reveal process improvements, and direct feedback often leads to further specification tightening, benefiting the entire market.

    Some end-users worry about long-term environmental impact. We addressed this early by treating process waste with a combination of advanced oxidative methods and granular activated carbon, lowering fluoride discharges to well below mandated limits. Supply partners and independent environmental auditors track compliance and continuously seek better ways to repurpose non-product side streams, turning potential waste into valued byproducts. Transparency remains a cornerstone of our approach; test reports and residue disposal protocols are shared openly with clients and regulatory bodies.

    User Experience and Technical Support

    Direct user contact is bred into our way of doing business. Technical and process support doesn't end once a shipment leaves the warehouse. Our chemists often field calls from R&D and production specialists troubleshooting everything from unusual color readings to suspected solvent incompatibilities. We’ve found that early, open dialogue prevents lost production time for users and identifies process improvements that flow backward into our own operation. Whether it’s process scaling, analytical troubleshooting, or advice on long-term storage, drawing directly from the experience of our technical staff builds stronger partnerships and more robust end-use outcomes.

    Feedback from multiple sectors—electronics, coatings, pharmaceuticals, and specialty intermediates—has guided incremental improvements over the past decade. For instance, coating manufacturers switching away from older esters noted lower off-gassing and improved film formation, reducing complaint rates and repeat processing. Electronic materials developers highlighted lower particulate counts and “plug and play” integration with their advanced purification systems. Pharmaceutical researchers cited smoother syntheses, shorter work-up, and easier separation, particularly in late-stage optimization.

    Working with so many different market segments exposes us to a wide array of technical requirements. We keep regular customer review sessions to adapt to new developments, such as tighter impurity limits or alternate packaging for specialized reactors. We have upgraded drum linings, redesigned venting, and tweaked packing material composition in response to these discussions. Call logs, written recommendations, and follow-up quality checks record each unique situation, guiding future manufacturing and distribution protocols.

    Continuous Improvement and Future Outlook

    Staying current in the fluorinated chemicals market means never accepting that a process is “good enough.” Our operation runs pilot batches of alternate synthetic routes, evaluates emerging purification methods, and revises analytical standards as detection technology improves. Site-wide quality audits and cross-department meetups give our operators and lab staff a real voice in day-to-day process tuning. Lessons learned from past process upsets—like the early transition from glass-lined to fluoropolymer reactors for enhanced product purity—now form the baseline for every improvement project.

    As the push toward more environmentally responsible chemistries continues, we closely monitor regulatory changes and evolving customer requests for lower residuals and better product lifecycle management. Collaborating with external research groups and technology incubators sharpens our product and process development, feeding fresh data back into the manufacturing cycle. Upstream supplier qualification, material traceability, and quick adaptability to alternate feedstocks are all points of active improvement in our operation.

    Long-term partnerships demand open communication and a shared commitment to problem-solving. We maintain regular in-person visits with key customers, hold joint workshops for troubleshooting, and invite cross-company audits to keep everyone aligned. As uses for Ethyl Perfluoropentanoate expand—driven by new electronic material architectures, advanced coatings, and tailored pharmaceuticals—our manufacturing approach rises to meet each challenge. Our team brings not just equipment and expertise, but a willingness to listen and a track record of finding practical, timely solutions.

    Conclusion: Why End-Users Trust Our Ethyl Perfluoropentanoate

    Years of manufacturing and technical support have taught us that reliability truly starts in the plant. Each lot of Ethyl Perfluoropentanoate we produce draws from experience, careful process control, and the trust built through ongoing collaboration with end-users. The compound’s value comes not just from its unique molecular design and physical properties, but from the support and responsiveness behind every delivery. Partnering with manufacturers and researchers pushing the boundaries of modern chemistry drives us to remain a reliable link in the specialty chemicals supply chain—meeting today’s needs with an eye on tomorrow’s demands.